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Biomechanical Properties of Ascending Thoracic Aortic Aneurysms and Mathematical Characterization

机译:上升性胸主动脉瘤的生物力学性质及数学表征

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To properly understand the natural history of ascending thoracic aortic aneurysms (ATAA) and better assess their risk of rupture, stress analyses asking for biaxial biomechanical data of the tissue are necessary, but information on this matter is restricted in the literature. The present study addressed the role of ATAA on the biomechanical response of vessel wall. Degenerative ATAA were excised from patients during graft replacement and non-aneurysmal age-matched vessels during autopsy. Uniaxi-al tensile-tests were conducted on circumferential (CIRC) and longitudinal (LONG) tissue strips. The experimental recordings were reduced by a Fung-type strain-energy function that was found to be appropriate for characterization of the vessel's biomechanical response. The material parameters and rupture properties disclosed that ATAA and non-aneurysmal aorta were aniso-tropic, i.e. stronger and stiffer in the CIRC direction. ATAA had no influence on tissue strength, but caused stiffening and extensibility reduction. Our findings may serve as input data for the implementation of finite element models to be used as improved surgical intervention criteria.
机译:为了正确了解升主动脉瘤(ATAA)的自然史并更好地评估其破裂风险,需要进行应力分析以获取组织的双轴生物力学数据,但是有关此问题的信息在文献中受到限制。本研究解决了ATAA在血管壁生物力学反应中的作用。在移植物置换期间从患者中切除变性的ATAA,在尸体解剖期间从患者中切除非动脉瘤性年龄匹配的血管。在周向(CIRC)和纵向(LONG)组织条上进行单轴拉伸测试。实验记录被Fung型应变能函数所减少,该函数被认为适合表征血管的生物力学响应。材料参数和断裂性能表明,ATAA和非动脉瘤主动脉是各向异性的,即在CIRC方向上更坚固。 ATAA对组织强度没有影响,但会导致僵硬和可延展性降低。我们的发现可作为实施有限元模型的输入数据,以用作改进的手术干预标准。

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